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Dr

Feng Li

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Overview

Background

Dr Feng Li is an ARC DECRA Fellow at The University of Queensland, specialising in electrochemical CO₂ conversion, electrocatalysis, ion-exchange membranes, electrolysers, and multiscale modelling. His research focuses on developing efficient and durable technologies for converting CO into valuable fuels and chemicals, with particular interests in catalyst design, membrane transport, reactor engineering, and carbon capture and utilisation.

Dr Li received his PhD in Chemistry from the University of Waterloo in 2022 , where he investigated structural transformations in nanocatalysts for CO₂ electrolysis using multiscale modelling.

From 2022 to 2026, he worked at the University of Toronto with Prof. David Sinton and Prof. Edward Sargent, developing advanced electrocatalysts, membranes, and electrolyser architectures for CO₂ electrolysis and capture.

His current research integrates electrocatalyst design, membrane science, and computational modelling to understand and control reaction and transport processes from the molecular scale to practical electrochemical systems.

Dr Li has published 42 peer-reviewed articles, including 20 as first, co-first, or corresponding author, in leading journals including Nature Energy, Nature Catalysis, Nature Sustainability, Nature Synthesis, Nature Communications, JACS, Energy & Environmental Science, Joule, and Angewandte Chemie.

Availability

Dr Feng Li is:
Available for supervision

Research interests

  • 1. Predictive Multiscale Modelling for Electrochemical Systems

    I integrate artificial intelligence and machine learning with density functional theory, molecular dynamics and continuum multiphysics modelling to study electrochemical systems across atomic, molecular and device scales. My research develops predictive models linking reaction energetics, molecular interactions, ion transport and mass transfer with device performance, enabling accelerated discovery and rational design of electrochemical materials, interfaces and reactors.

  • 2. Electrochemical Interfaces and Reaction Microenvironments

    I investigate how catalyst surfaces, ions, local pH, electric fields, interfacial water and mass transport govern electrochemical reactions. By engineering catalyst–electrolyte and membrane–electrode interfaces, I develop mechanistic design principles to control reaction pathways, product selectivity and catalyst stability in high-rate electrochemical systems.

  • 3. Advanced Ion-Exchange and Bipolar Membranes

    I develop ion-exchange, bipolar and hybrid membranes for electrochemical energy and chemical-conversion technologies. My research focuses on ion transport, molecular crossover, water dissociation, interfacial structure and chemical stability, with the goal of overcoming conductivity–selectivity trade-offs and enabling more efficient, selective and durable electrochemical processes.

Research impacts

Dr Feng Li’s research aims to accelerate the transition toward a low-carbon chemical industry by developing technologies that convert captured CO₂ into valuable fuels and chemicals using renewable electricity.

A major focus of his work is overcoming the efficiency, durability and product-separation challenges that currently limit large-scale CO₂ electrolysis. By combining catalyst design, advanced membranes and electrolyser engineering, his research has demonstrated high-rate CO₂ conversion to products such as ethylene and ethanol under conditions relevant to practical electrochemical systems.

Key outcomes of his research include:

  • developing CO₂ electrolysers capable of maintaining high selectivity toward multi-carbon products at industrially relevant current densities;

  • improving single-pass carbon utilisation through better control of reaction and transport processes;

  • developing membrane and reactor designs that reduce product crossover and improve operational stability;

  • demonstrating strategies to retain and concentrate liquid products such as ethanol, reducing the downstream separation burden; and

  • integrating carbon capture and electrochemical conversion to create more energy-efficient pathways from CO₂ emissions to useful chemicals.

Through collaborations spanning materials science, chemical engineering and industry, his research is helping establish design principles for scalable electrochemical manufacturing. Ultimately, this work seeks to reduce dependence on fossil-derived chemical feedstocks while enabling more efficient utilisation of captured carbon and renewable electricity.

Works

Search Professor Feng Li’s works on UQ eSpace

28 works between 2015 and 2026

21 - 28 of 28 works

2017

Journal Article

Defect Engineering in MoSe<sub>2</sub> for the Hydrogen Evolution Reaction: From Point Defects to Edges

Shu, Haibo, Zhou, Dong, Li, Feng, Cao, Dan and Chen, Xiaoshuang (2017). Defect Engineering in MoSe2 for the Hydrogen Evolution Reaction: From Point Defects to Edges. ACS Applied Materials & Interfaces, 9 (49), 42688-42698. doi: 10.1021/acsami.7b12478

Defect Engineering in MoSe<sub>2</sub> for the Hydrogen Evolution Reaction: From Point Defects to Edges

2017

Journal Article

Borophene as Efficient Sulfur Hosts for Lithium–Sulfur Batteries: Suppressing Shuttle Effect and Improving Conductivity

Zhang, Lin, Liang, Pei, Shu, Hai-bo, Man, Xiao-lei, Li, Feng, Huang, Jie, Dong, Qian-min and Chao, Dong-liang (2017). Borophene as Efficient Sulfur Hosts for Lithium–Sulfur Batteries: Suppressing Shuttle Effect and Improving Conductivity. The Journal of Physical Chemistry C, 121 (29), 15549-15555. doi: 10.1021/acs.jpcc.7b03741

Borophene as Efficient Sulfur Hosts for Lithium–Sulfur Batteries: Suppressing Shuttle Effect and Improving Conductivity

2017

Journal Article

Electrocatalytic Activity and Design Principles of Heteroatom-Doped Graphene Catalysts for Oxygen-Reduction Reaction

Li, Feng, Shu, Haibo, Liu, Xintong, Shi, Zhaoyi, Liang, Pei and Chen, Xiaoshuang (2017). Electrocatalytic Activity and Design Principles of Heteroatom-Doped Graphene Catalysts for Oxygen-Reduction Reaction. The Journal of Physical Chemistry C, 121 (27), 14434-14442. doi: 10.1021/acs.jpcc.7b03093

Electrocatalytic Activity and Design Principles of Heteroatom-Doped Graphene Catalysts for Oxygen-Reduction Reaction

2017

Journal Article

The Role of Intrinsic Defects in Electrocatalytic Activity of Monolayer VS<sub>2</sub> Basal Planes for the Hydrogen Evolution Reaction

Zhang, Yang, Chen, Xiaoshuang, Huang, Yan, Zhang, Chong, Li, Feng and Shu, Haibo (2017). The Role of Intrinsic Defects in Electrocatalytic Activity of Monolayer VS2 Basal Planes for the Hydrogen Evolution Reaction. The Journal of Physical Chemistry C, 121 (3), 1530-1536. doi: 10.1021/acs.jpcc.6b11987

The Role of Intrinsic Defects in Electrocatalytic Activity of Monolayer VS<sub>2</sub> Basal Planes for the Hydrogen Evolution Reaction

2016

Journal Article

The capacity fading mechanism and improvement of cycling stability in MoS <sub>2</sub> -based anode materials for lithium-ion batteries

Shu, Haibo, Li, Feng, Hu, Chenli, Liang, Pei, Cao, Dan and Chen, Xiaoshuang (2016). The capacity fading mechanism and improvement of cycling stability in MoS 2 -based anode materials for lithium-ion batteries. Nanoscale, 8 (5), 2918-2926. doi: 10.1039/c5nr07909h

The capacity fading mechanism and improvement of cycling stability in MoS <sub>2</sub> -based anode materials for lithium-ion batteries

2016

Journal Article

Unveiling the atomic structure and electronic properties of atomically thin boron sheets on an Ag(111) surface

Shu, Haibo, Li, Feng, Liang, Pei and Chen, Xiaoshuang (2016). Unveiling the atomic structure and electronic properties of atomically thin boron sheets on an Ag(111) surface. Nanoscale, 8 (36), 16284-16291. doi: 10.1039/c6nr02871c

Unveiling the atomic structure and electronic properties of atomically thin boron sheets on an Ag(111) surface

2016

Journal Article

Invisible growth of microstructural defects in graphene chemical vapor deposition on copper foil

Zhang, Yanhui, Zhang, Haoran, Li, Feng, Shu, Haibo, Chen, Zhiying, Sui, Yanping, Zhang, Yaqian, Ge, Xiaoming, Yu, Guanghui, Jin, Zhi and Liu, Xinyu (2016). Invisible growth of microstructural defects in graphene chemical vapor deposition on copper foil. Carbon, 96, 237-242. doi: 10.1016/j.carbon.2015.09.041

Invisible growth of microstructural defects in graphene chemical vapor deposition on copper foil

2015

Journal Article

Atomic Mechanism of Electrocatalytically Active Co–N Complexes in Graphene Basal Plane for Oxygen Reduction Reaction

Li, Feng, Shu, Haibo, Hu, Chenli, Shi, Zhaoyi, Liu, Xintong, Liang, Pei and Chen, Xiaoshuang (2015). Atomic Mechanism of Electrocatalytically Active Co–N Complexes in Graphene Basal Plane for Oxygen Reduction Reaction. ACS Applied Materials & Interfaces, 7 (49), 27405-27413. doi: 10.1021/acsami.5b09169

Atomic Mechanism of Electrocatalytically Active Co–N Complexes in Graphene Basal Plane for Oxygen Reduction Reaction

Funding

Current funding

  • 2026 - 2027
    Industrially Durable CO2 Electrolysers with Self-Protective Cu for Ethylene Production
    Research Donation Generic
    Open grant
  • 2026 - 2029
    Ultra-efficient CO2 Electrolyser with Microchanneled Bipolar Membrane
    ARC Discovery Early Career Researcher Award
    Open grant

Supervision

Availability

Dr Feng Li is:
Available for supervision

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Media

Enquiries

For media enquiries about Dr Feng Li's areas of expertise, story ideas and help finding experts, contact our Media team:

communications@uq.edu.au